Physical Review Letters · 2018 · 62 citations · 38 references
Cooper pairing caused by an induced interaction represents a paradigm in our description of fermionic superfluidity. Here, we present a strong coupling theory for the critical temperature of p-wave pairing between spin polarized fermions immersed in a Bose-Einstein condensate. The fermions interact via the exchange of phonons in the condensate, and our self-consistent theory takes into account the full frequency and momentum dependence of the resulting induced interaction. We demonstrate that both retardation and self-energy effects are important for obtaining a reliable value of the critical temperature. Focusing on experimentally relevant systems, we perform a systematic analysis varying the boson-boson and boson-fermion interaction strength as well as their masses, and identify the most suitable system for realizing a p-wave superfluid. Our results show that such a superfluid indeed is experimentally within reach using light bosons mixed with heavy fermions.
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Yoichi Kamihara, Takumi Watanabe, Masahiro Hirano et al. · Journal of the American Chemical Society · 2008 · 7.7K citations
Superconducting Material, Magnetic Properties, Engineering +18
Condensation of Pairs of Fermionic Atoms near a Feshbach Resonance
Martin W. Zwierlein, C. A. Stan, Christian H. Schunck et al. · Physical Review Letters · 2004 · 1.2K citations · Full text
Vortices and superfluidity in a strongly interacting Fermi gas
Martin W. Zwierlein, J. R. Abo-Shaeer, André Schirotzek et al. · Nature · 2005 · 968 citations · Full text